XC95144-15PQG160I
XC95144-15PQG160I
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rohs

AMD Xilinx

XC95144-15PQG160I


XC95144-15PQG160I
F20-XC95144-15PQG160I
Active
FLASH PLD, 15 ns, 144-Cell, CMOS, LEAD FREE, PLASTIC, QFP-160
LEAD FREE, PLASTIC, QFP-160

XC95144-15PQG160I ECAD Model


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XC95144-15PQG160I Attributes


Type Description Select
Pbfree Code Yes
Rohs Code Yes
Part Life Cycle Code Obsolete
Supply Voltage-Nom 5 V
Propagation Delay 15 ns
Number of Macro Cells 144
Number of I/O Lines 133
Programmable Logic Type FLASH PLD
Temperature Grade INDUSTRIAL
Package Shape SQUARE
Technology CMOS
Organization 0 DEDICATED INPUTS, 133 I/O
Additional Feature YES
Clock Frequency-Max 55.6 MHz
In-System Programmable YES
JTAG BST YES
Output Function MACROCELL
Power Supplies 3.3/5,5 V
Supply Voltage-Max 5.5 V
Supply Voltage-Min 4.5 V
JESD-30 Code S-PQFP-G160
Qualification Status Not Qualified
JESD-609 Code e3
Moisture Sensitivity Level 3
Operating Temperature-Max 85 °C
Operating Temperature-Min -40 °C
Peak Reflow Temperature (Cel) 245
Time@Peak Reflow Temperature-Max (s) 30
Number of Terminals 160
Package Body Material PLASTIC/EPOXY
Package Code QFP
Package Equivalence Code QFP160,1.2SQ
Package Shape SQUARE
Package Style FLATPACK
Surface Mount YES
Terminal Finish Matte Tin (Sn)
Terminal Form GULL WING
Terminal Pitch 650 µm
Terminal Position QUAD
Width 28 mm
Length 28 mm
Seated Height-Max 4.1 mm
Ihs Manufacturer XILINX INC
Part Package Code QFP
Package Description LEAD FREE, PLASTIC, QFP-160
Pin Count 160
Reach Compliance Code unknown
HTS Code 8542.39.00.01

XC95144-15PQG160I Datasheet Download


XC95144-15PQG160I Overview



The XC95144-15PQG160I chip model is a highly versatile, high-performance integrated circuit that is designed for a variety of applications, including high-performance digital signal processing, embedded processing, and image processing. It is designed to be used with the HDL (Hardware Description Language) language, which allows for a greater level of flexibility and control when programming the chip. The XC95144-15PQG160I offers the capability to upgrade and expand the chip’s capabilities in the future, making it a great choice for advanced communication systems.


The XC95144-15PQG160I chip model is a high-performance integrated circuit that is designed to be used in a variety of applications. It features a powerful processor, a high-speed memory, and a wide range of digital signal processing capabilities. The chip is designed to be used with the HDL language, which provides a high level of control over the chip’s programming. The chip is also designed to be upgradeable, allowing for future expansions and upgrades.


The XC95144-15PQG160I chip model is designed to meet the needs of a variety of applications, including high-performance digital signal processing, embedded processing, and image processing. The chip is designed to be used with the HDL language, which allows for a greater level of control and flexibility when programming the chip. The XC95144-15PQG160I also offers the capability to upgrade and expand the chip’s capabilities in the future.


When designing a product using the XC95144-15PQG160I chip model, it is important to consider the specific design requirements of the product. The design requirements should include the type of application the product will be used for, the desired performance level, and any special features or requirements that the product may need. Additionally, it is important to consider the actual case studies and precautions that need to be taken when using the chip.


In conclusion, the XC95144-15PQG160I chip model is a highly versatile, high-performance integrated circuit that is designed for a variety of applications, including high-performance digital signal processing, embedded processing, and image processing. It is designed to be used with the HDL language, which allows for a greater level of flexibility and control when programming the chip. The XC95144-15PQG160I is also designed to be upgradeable, allowing for future expansions and upgrades. When designing a product using the XC95144-15PQG160I chip model, it is important to consider the specific design requirements, actual case studies, and precautions that need to be taken when using the chip.



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